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真菌的瑞士军刀:黑色素在牛真菌病真菌致病过程中的多效性作用

Fungi's Swiss Army Knife: Pleiotropic Effect of Melanin in Fungal Pathogenesis during Cattle Mycosis.

作者信息

Romero Víctor, Kalinhoff Carolina, Saa Luis Rodrigo, Sánchez Aminael

机构信息

Maestría en Biotecnología Agropecuaria, Universidad Técnica Particular de Loja, San Cayetano Alto, Calle París s/n, Loja 1101608, Ecuador.

Museo de Zoología, Universidad Técnica Particular de Loja, San Cayetano Alto, Calle París s/n, Loja 1101608, Ecuador.

出版信息

J Fungi (Basel). 2023 Sep 15;9(9):929. doi: 10.3390/jof9090929.

DOI:10.3390/jof9090929
PMID:37755037
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10532448/
Abstract

Fungal threats to public health, food security, and biodiversity have escalated, with a significant rise in mycosis cases globally. Around 300 million people suffer from severe fungal diseases annually, while one-third of food crops are decimated by fungi. Vertebrate, including livestock, are also affected. Our limited understanding of fungal virulence mechanisms hampers our ability to prevent and treat cattle mycoses. Here we aim to bridge knowledge gaps in fungal virulence factors and the role of melanin in evading bovine immune responses. We investigate mycosis in bovines employing a PRISMA-based methodology, bioinformatics, and data mining techniques. Our analysis identified 107 fungal species causing mycoses, primarily within the Ascomycota division. , , , and were the most prevalent genera. Of these pathogens, 25% produce melanin. Further research is required to explore the involvement of melanin and develop intervention strategies. While the literature on melanin-mediated fungal evasion mechanisms in cattle is lacking, we successfully evaluated the transferability of immunological mechanisms from other model mammals through homology. Bioinformatics enables knowledge transfer and enhances our understanding of mycosis in cattle. This synthesis fills critical information gaps and paves the way for proposing biotechnological strategies to mitigate the impact of mycoses in cattle.

摘要

真菌对公众健康、粮食安全和生物多样性的威胁不断升级,全球范围内真菌病病例显著增加。每年约有3亿人患有严重的真菌疾病,而三分之一的粮食作物被真菌破坏。包括家畜在内的脊椎动物也受到影响。我们对真菌毒力机制的了解有限,这阻碍了我们预防和治疗牛真菌病的能力。在此,我们旨在弥合真菌毒力因子以及黑色素在逃避牛免疫反应中的作用方面的知识差距。我们采用基于PRISMA的方法、生物信息学和数据挖掘技术研究牛的真菌病。我们的分析确定了107种引起真菌病的真菌物种,主要在子囊菌门内。 、 、 和 是最常见的属。在这些病原体中,25%产生黑色素。需要进一步研究以探索黑色素的作用并制定干预策略。虽然缺乏关于黑色素介导的牛真菌逃避机制的文献,但我们通过同源性成功评估了免疫机制从其他模型哺乳动物的可转移性。生物信息学能够实现知识转移并增强我们对牛真菌病的理解。这一综合研究填补了关键的信息空白,为提出减轻牛真菌病影响的生物技术策略铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb1a/10532448/fb501e93aaed/jof-09-00929-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb1a/10532448/fb501e93aaed/jof-09-00929-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb1a/10532448/fb501e93aaed/jof-09-00929-g001.jpg

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本文引用的文献

1
Mycotic Diseases in Chelonians.龟类的真菌性疾病
J Fungi (Basel). 2023 Apr 27;9(5):518. doi: 10.3390/jof9050518.
2
Antifungal Drug Resistance: An Emergent Health Threat.抗真菌药物耐药性:一种新出现的健康威胁。
Biomedicines. 2023 Mar 31;11(4):1063. doi: 10.3390/biomedicines11041063.
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Antimicrobial Resistance and Its Drivers-A Review.抗菌药物耐药性及其驱动因素——综述
Antibiotics (Basel). 2022 Oct 5;11(10):1362. doi: 10.3390/antibiotics11101362.
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Recent Advances in the Biocontrol of Nosemosis in Honey Bees ( L.).蜜蜂微孢子虫病生物防治的最新进展
J Fungi (Basel). 2022 Apr 20;8(5):424. doi: 10.3390/jof8050424.
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Tackling the emerging threat of antifungal resistance to human health.应对抗真菌耐药性对人类健康构成的新威胁。
Nat Rev Microbiol. 2022 Sep;20(9):557-571. doi: 10.1038/s41579-022-00720-1. Epub 2022 Mar 29.
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The Role of (Microsporidia: Nosematidae) in Honey Bee Colony Losses and Current Insights on Treatment.(微孢子虫纲: Nosematidae科)在蜜蜂蜂群损失中的作用及当前治疗见解
Vet Sci. 2022 Mar 11;9(3):130. doi: 10.3390/vetsci9030130.
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Replicative Aging Remodels the Cell Wall and Is Associated with Increased Intracellular Trafficking in Human Pathogenic Yeasts.复制性衰老重塑细胞壁,并与人类致病性酵母菌中细胞内运输增加相关。
mBio. 2021 Feb 22;13(1):e0019022. doi: 10.1128/mbio.00190-22. Epub 2022 Feb 15.
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Coevolutionary theory of hosts and parasites.宿主与寄生虫的协同进化理论。
J Evol Biol. 2022 Feb;35(2):205-224. doi: 10.1111/jeb.13981. Epub 2022 Jan 30.
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Immunity to Invasive Fungal Diseases.侵袭性真菌病的免疫。
Annu Rev Immunol. 2022 Apr 26;40:121-141. doi: 10.1146/annurev-immunol-101220-034306. Epub 2022 Jan 10.
10
The Protective Role of 1,8-Dihydroxynaphthalene-Melanin on Conidia of the Opportunistic Human Pathogen Aspergillus fumigatus Revisited: No Role in Protection against Hydrogen Peroxide and Superoxides.1,8-二羟萘黑色素对机会性病原体烟曲霉分生孢子的保护作用再探:在对抗过氧化氢和超氧化物方面无保护作用。
mSphere. 2022 Feb 23;7(1):e0087421. doi: 10.1128/msphere.00874-21. Epub 2022 Jan 5.